Enhanced quantum tunneling in quantum Zeno dynamics freezing momentum direction
arXiv:2202.10150 · doi:10.1103/PhysRevA.106.012220
Abstract
Quantum tunneling is a fundamental quantum mechanical effect involved in plenty of physical phenomena. Its control would impact these phenomena and the technologies based on them. We show that the quantum tunneling probability through a potential barrier can be increased to approach unity in a quantum Zeno dynamics undergone by the tunneling particle in which the direction of the momentum is frequently monitored. We first model the measurements of the momentum direction as selective von Neumann projections, and then as nonselective, direction-sensitive interactions of the particle with probe particles. Nonselective measurements are more efficient than selective measurements in enhancing the quantum tunneling probability.
7 pages, 5 figures, 4 links to supplemental material (videos): 6 MB each
References in corpus (7)
- Quantum Zeno dynamics: mathematical and physical aspects
- Experimental realization of quantum zeno dynamics
- Proton-Nucleus Collisions at the LHC: Scientific Opportunities and Requirements
- Optical Backaction-Evading Measurement of a Mechanical Oscillator
- All-optical attoclock for imaging tunnelling wavepackets
- Quantum measurement and thermally assisted proton tunnelling
- Reflection of a Particle from a Quantum Measurement